In a liquid crystal display device where each unit pixel p arranged on a liquid crystal panel 101A is constituted by a plurality of pixels p1, p2, and p3, the pixels p1, p2, and p3 are divided into sub-pixels p11 and p12, sub-pixels p21, and p22, and sub-pixels p31 and p32, respectively. The liquid crystal display device is provided with driver ICs 201 and 202 for driving the sub-pixels p11, p21, and p31, and the sub-pixels p12, p22, and p32 constituting the pixels so that different gradation-brightness value characteristics may be given. Due to this, multi-gradation display can be performed.
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1. A method of driving a liquid crystal display device where a plurality of pixels constituting each unit pixel and each of said plurality of pixels divided into a first and a second sub-pixels, said method comprising:
a step of supplying a first driver with a voltage changeable within a range of a predetermined voltage V2 to a predetermined voltage V1, as an input value of a gradation voltage for driving the first sub-pixel;
a step of supplying a second driver with a voltage changeable within a range of a predetermined voltage V3 and said predetermined voltage V1, as an input value of a gradation voltage for driving said second sub-pixel, and
a relationship among said voltages V3, V2, and V1 represented by V2>V3>V1.
2. The method of driving said liquid crystal display device according to
3. The method of driving said liquid crystal display device according to
4. The method of driving the liquid crystal display device according to
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This application claims priority based on Japanese Patent Application No. JP 2002-112713, filed Apr. 15, 2002.
1. Field of the Invention
The present invention relates to a liquid crystal display device capable of performing multi-gradation display. Particularly, the present invention relates to a liquid crystal display device which can be driven by a driver of an existing type and yet can perform multi-gradation display with higher performance than expected with the existing type of driver.
2. Description of the Related Art
A liquid crystal display device and a plasma display device are known as image display devices using a flat panel. Usually, a digital signal is used at the input interface of these display devices. In a display device using a digital signal at its input interface, the number of displayable gradations depends on the number of bits contained in a signal to be used. As the number of gradations increases, the number of bits increases too. In case of a liquid crystal display device, a source driver achieving the largest number of gradations among source drivers now in practical use is an 8-bit type (256 gradations). Gradations more than this can not be displayed.
Suppose that a 12-bit type source driver is developed by simply increasing the number of bits. When such a 12-bit type source driver is compared with an 8-bit type source driver, the number of resistors comprised in a digital-analog converter (hereinafter referred to as DCA) for generating each gradation and the number of switch circuits for selecting the resistors required in the 12-bit type source driver are 16 (2122/8=4096/256=16) times larger than those required in the 8-bit type source driver. Consequently, the size of the circuit becomes considerably large, and an increase in costs is inevitable because of expansion of the chip size. Hence, there occurs an idea of enabling display of a larger number of gradations than achieved by an existing circuit system yet with the use of an existing circuit system. As one method therefore a method of using each unit pixel by dividing it into a plurality of pixels has been proposed.
Unexamined Japanese Patent Application KOKAI Publication No. 2001-34232 proposes one such method.
The color liquid crystal panel 101 displays a color image by liquid crystal cells arranged on a plane. The backlight 102 is a light source which emits white-color light from the back of the liquid crystal panel, so that the liquid crystal panel may perform color image display by transmissive light. The cell driver 103 generates a drive signal for driving each liquid crystal cell of the liquid crystal panel based on input data. The data processing unit 104 performs data processing for supplying input data to the cell driver 103 in response to an input digital signal. The I/F unit 105 constitutes an interface for external inputting and outputting. The cell driver 103 is built up by a source driver (not shown) and a gate driver (not shown). The source driver controls the source of each transistor for driving each liquid crystal cell along the arrangement in the vertical direction (column direction). The gate driver controls the gate of each transistor along the arrangement in the horizontal direction (row direction).
Specifically, in the color liquid crystal panel 101, one set of an R pixel, a G pixel, and a B pixel is used as a unit pixel and monochrome display is performed in each unit pixel. Since a unit pixel of a color image is constituted by an R pixel, a G pixel, and a B pixel in case of using color filters, the number of brightness levels displayable by one unit pixel is three times as large as the number of brightness levels displayable by each of the R pixel, the G pixel, and the B pixel.
Therefore, it is possible to break the gradation levels of a display image into more minutely-stepped levels by dividing the brightness level range into, for example, three and scale-marking each divided range. Let it be assumed that one unit pixel p is divided into three pixels p1, p2, and p3 as shown in
When the data processing unit 104 supplies a brightness value converted from image data to the unit pixel p, it divides the value almost equally among the three pixels p1, p2, and p3. Specifically, let a case be considered where 8-bit image data is input to a color display for performing 8-bit display. The 8-bit image data is composed of values of 0 to 255. In this case, it is arranged that the smallest value in the image data correspond to the smallest brightness value 0 of the color display and the largest value in the image data correspond to the largest brightness value 765 of the color display.
Further, the Publication of Japanese Patent No. 2700903 discloses a technique for regarding a plurality of neighboring pixels as one display unit, controlling the gradation level of each display unit by changing combinations of the lighting and non-lighting states of each pixel in the display unit or the gradation level of each pixel in the display unit, and arranging that the center of the display unit correspond to the center of the densities of the middle tones.
The invention disclosed in the Publication of Japanese Patent No. 2700903 is directed to a liquid crystal display device of a so-called simple matrix type, and for performing gradational display by varying the width of a data electrode.
A liquid crystal display device including a driving method and/or driving device is presented. The conventional liquid crystal display device 100 shown in
Meanwhile, a frame rate control (hereinafter referred to as FRC) method has been known as a method for performing multi-gradation display. The FRC method is for forming, for example, four 8-bit image data by dividing 10-bit image data, and performing 10-bit gradational display with the use of 8-bit image data by sequentially displaying the four image data while increasing the frame frequency.
Multi-gradation display can be easily performed by the FRC method. However, since image display by the FRC method utilizes the afterimage effect caused by the human visual function, there is a problem that flickers occur many times. To get rid of flickers, it is necessary to increase the frame frequency and switch displays at a high speed. However, since there is a limit on the response speed of the driver IC of a liquid crystal display device or a liquid crystal display device itself, display switching at a high speed has been difficult. The present invention was made in view of the above circumstance, and an object of the present invention is to provide a liquid crystal display device which can perform multi-gradation display of a desired level without performing the FRC.
To achieve the above object, a liquid crystal display device according to the present invention is a liquid crystal display device having:
The sub-pixels may have different areas from each other; and
The driving device may apply a gradation-brightness value characteristic of a narrower brightness value range to the sub-pixels having a smaller area than the larger area, and the gradation-brightness value characteristic of the narrower brightness value range complementing each one gradation of the gradation-brightness value characteristic of the wider brightness value range.
The gradation-brightness value characteristic of the wider brightness value range may be determined by upper bits of a gradation voltage setting input which is input to the driving device, and
the gradation-brightness value characteristic of the narrower brightness value range may be determined by lower bits of the gradation voltage setting input.
The sub-pixels may have almost equal areas to each other;
The voltage-brightness value characteristic corresponding to the upper half and the voltage-brightness value characteristic corresponding to the lower half may be determined by gradation voltage setting inputs having a same number of bits.
The gradation voltage setting inputs may be obtained by applying a frame rate control to original gradation voltage setting inputs.
The driving device may include a plurality of drivers which generate an output for driving sub-pixels in a substantially same positional relation with respect to pixels to which these sub-pixels belong respectively, so that these sub-pixels have a substantially same gradation-brightness value characteristic.
The driving device may include a single driver generating a plurality of outputs sub-pixels in a substantially same positional relation, so that the sub-pixels have a substantially same gradation-brightness value characteristic.
The liquid crystal display panel may be for displaying a color image.
A liquid crystal display device according to a second aspect of the present invention is a liquid crystal display device having:
The sub-pixels may have different areas from each other; and the driving device applies a gradation-brightness value characteristic of a wider brightness value range to the sub-pixels having a larger area than others.
The driving device may apply a gradation-brightness value characteristic of a narrower brightness value range to the sub-pixels having a smaller area than the larger area, and the gradation-brightness value characteristic of the narrower brightness value range complementing each one gradation of the gradation-brightness value characteristic of the wider brightness value range.
The gradation-brightness value characteristic of the wider brightness value range may be determined by upper bits of a gradation voltage setting input which is input to the driving device; and
The sub-pixels may have almost equal areas to each other;
The voltage-brightness value characteristic corresponding to the upper half and the voltage-brightness value characteristic corresponding to the lower half may be determined by gradation voltage setting inputs having a same number of bits.
A method according to a third aspect of the present invention is a method of driving a liquid crystal display device where a plurality of pixels constituting each unit pixel and each of the plurality of pixels divided into a first and a second sub-pixels, the method having:
The predetermined voltage V2 may be a maximum value of a drive voltage to be applied to the first sub-pixel, and the predetermined voltage V1 may be a minimum value of a drive voltage to be applied to the first sub-pixel.
The predetermined voltage V3 may be a maximum value of a drive voltage to be applied to the second sub-pixel.
The plurality of pixels may be for displaying a color image.
These objects and other objects and advantages of the present invention will become more apparent upon reading of the following detailed description and the accompanying drawings in which:
The embodiments of the present invention will now be explained with reference to the drawings. The explanation will be made in detail by employing each embodiment.
In the liquid crystal panel 101A, a plurality of great-groups of sub-pixels each of which is made up of a first group including sub-pixels p11, p21, and p31 and a second group including sub-pixels p12, p22, and p32 are repeatedly arranged horizontally along each output from the gate driver IC 203. Outputs from the first driver IC 201 are connected to the data electrodes of TFTs (Thin Film Transistors) for switching on/off the sub-pixels p11, p21, and p31 of the first group respectively. Outputs from the second driver IC 202 are connected to the data electrodes of TFTs for switching on/off the sub-pixels p12, p22, and p32 of the second group respectively.
The upper driver IC 201 is supplied with a voltage changeable within a range of V2 to V1, as a gradation voltage setting input for driving the pixels. The value V2 is the maximum value of the drive voltage (driver IC output voltage) to be applied to the sub-pixels p11, p21, and p31. The value V1 is the minimum value of the drive voltage to be applied to the sub-pixels p11, p21, and p31. Accordingly, the dynamic range of voltages to be applied by the upper driver IC 201 varies from V2 to V1.
The lower driver IC 202 is supplied with a voltage changeable within a range of V3 to V1, as a gradation voltage setting input for driving the pixels. The value V3 is the maximum value of the drive voltage to be applied to the sub-pixels p12, p22, and p32. The value V1 is equal to the gradation voltage setting input V1 of the upper driver IC 201. Accordingly, the dynamic range of the voltages to be applied by the lower driver IC 202 varies from V3 to V1. The relationship among the voltages V3, V2, and V1 is represented by V2>V3>V1.
Next, the operation of the liquid crystal panel 101A according to the present embodiment will be explained with reference to
As shown in
As shown in
Accordingly, in case of processing 16-bit digital data, if the top 8 bits are input to the upper driver IC 201 which drives the group of sub-pixels p*1 and the bottom 8 bits are input to the lower driver IC 202 which drives the group of sub-pixels p*2, the number of gradations displayable by each of the pixels p1, p2, and p3 is 65536 (256×256). Therefore, a color liquid crystal panel, in which R, G, and B color filters are formed over the pixels p1, p2, and p3 respectively, can display 65536×3 colors. A monochrome liquid crystal panel, which includes no color filter, can display 65536×3 gradations.
As described above, in the liquid crystal panel according to the present embodiment, the pixels p1, p2, and p3 are divided into sub-pixels p11, p21, and p31, and sub-pixels p12, p22, and p32 respectively, and the sub-pixels confronting each other are divided at a division ratio (area ratio) other than 1 and driven by different driver ICs from each other. Due to this, it is possible to perform multi-gradation display which is greater than multi-gradation display acquired by a conventional liquid crystal panel, without using a complicated circuit structure, but using existing driver ICs.
According to the first embodiment, a value other than 1 is used as the division ratio for the sub-pixels. However, the division ratio for the sub-pixels may be 1 (i.e., two sub-pixels occupy regions having the same area as each other). The following will explain an embodiment regarding this case.
The driver IC 201A which is connected to the upper side of the liquid crystal panel 101B for driving the group of sub-pixels p*1 is supplied with gradation voltage setting inputs within a range of V3 to V2. Therefore, the dynamic range of the voltages to be applied to each pixel is V3 to V2. The driver IC 202A which is connected to the lower side of the liquid crystal panel 101B for driving the group of sub-pixels p*2 is supplied with gradation voltage setting inputs within a range of V2 to V1. Therefore, the dynamic range of the voltages to be applied to each pixel is V2 to V1. Since the upper sub-pixels and lower sub-pixels constituting the pixels p1, p2, and p3 are equal-sized, the value V2 should be such a voltage value as would generate the lowest brightness level for the group of sub-pixels p*1 and at the same time would generate the highest brightness level for the group of sub-pixels p*2.
Further, the brightness value of each unit pixel is represented by the total of the brightness values of the pixels constituting each unit pixel. Therefore, in a case where the largest brightness value of each of the pixels p1, p2, and p3 is 1, the largest brightness value of the unit pixel is the treble, i.e., 3. To represent this relationship by numbers of gradations, in case of a color liquid crystal panel in which R, G, and B color filters are formed over the pixels, the number of gradations displayable by each sub-pixel is 256, the number of gradations displayable by each pixel is the double (512), and 512×3 colors can be displayed by each unit pixel, as shown in
As described above, in the liquid crystal panel according to the present embodiment, the pixels p1, p2, and p3 are respectively divided into sub-pixels p11, p21, and p31, and sub-pixels p12, p22, and p32 which are equal-sized and driven by different driver ICs. Therefore, it is possible to perform multi-gradation display which is greater than multi-gradation display acquired by a conventional liquid crystal panel, without using a complicated circuit structure, but using existing driver ICs. According to the present embodiment, the number of displayable gradations is reduced as compared to the first embodiment. However, since the areas of the sub-pixels originating from the common pixel are equal to each other, the structure is simpler than that of the first embodiment.
In the first and second embodiments, the driver ICs are arranged separately on the upper side and lower side of the liquid crystal panel. However, a single driver IC may be arranged on either side of the liquid crystal panel. The following will explain an embodiment where the driver IC is arranged only on the upper side of the liquid crystal panel.
The node of the voltage V1 of the resistor voltage divider 301 and the node of the voltage V1 of the resistor voltage divider 302 are connected to each other inside the driver IC 204. A gradation voltage generated by the resistor voltage divider 301 based on a gradation voltage setting input within the V2−V1 range is supplied to a sub-pixel in the group p*1 through an odd number-th output from the driver IC 204. A gradation voltage generated by the resistor voltage divider 302 based on a gradation voltage setting input within the V3−V1 range is supplied to a sub-pixel in the group p*2 through an even number-th output from the driver IC 204.
The relationship between gradation voltages and relative brightness values is the same as that of the first embodiment. As shown in
As described above, in the liquid crystal panel 101C according to the present embodiment, the sub-pixels included in both of the group p*1 and the group p*2 are driven by the common driver IC 204. Therefore, it is possible to connect the node of the gradation voltage setting input V1 for driving the sub-pixels of the group p*1 and the node of the gradation voltage setting input V1 for driving the sub-pixels of the group p*2 inside the driver IC 204. Accordingly, it is possible to prevent occurrence of unevenness in the displayed gradations due to the margin of errors in the gradation voltage setting inputs between two driver ICs, which could happen in the case of the first embodiment where V1 nodes are separate between the upper driver IC 201 and the lower driver IC 202.
The liquid crystal panel 101 has an active matrix type TFT structure, where liquid crystal layer is sandwiched between two substrates. Gate lines GL and drain lines DL are arranged in the row direction and in the column direction like a matrix on the surface of the lower substrate. A plurality of unit pixels are built in the matrix structure, and each unit pixel has a pixel electrode. A common electrode is formed on the surface of the upper substrate so as to be opposed to the pixel electrodes.
The drain lines DL are connected to the driver ICs 201 and 202. The driver ICs 201 and 202 store predetermined image data for each line based on a horizontal control signal, and supply corresponding image display signals to the drain lines DL in a sequential manner. The gate lines GL are connected to the scanning driver 203. The scanning driver 203 sequentially applies, based on a vertical control signal, scanning signals to the gate lines GL so that the gate lines GL are in a selected state, and applies a voltage same as that of the image display signals supplied to the drain lines, to the pixel electrodes arranged at the intersections of the gate lines GL and the drain lines DL.
The RGB decoder 240 extracts a vertical clock signal (V), a horizontal clock signal (H), and a synchronization signal (CSY) from an image signal, and supplies the extracted signals to the LCD controller 260. Also, the RGB decoder 240 extracts color signals (R,G, and B signals) of red (R), green (G), and blue (B) from the image signal based on a field/line reverse signal FRP output from the LCD controller 260, converts the R, G, and B signals into digital R, G, and B signals of a predetermined bit width, and supplies the reversed R, G, and B signals to the driver ICs 201 and 202.
In this case, the gradation-brightness value characteristic controller 250 drives the sub-pixels constituting each pixel to have gradation-brightness value characteristics different from each other based on the reversed R, G, and B signals from the RGB decoder 240 and the field/line reverse signal FRP from the LCD controller 260. For example, in a case where the sub-pixels constituting each pixel have different areas from each other, the gradation-brightness value characteristic controller 250 gives the sub-pixel having the larger area a gradation-brightness value characteristic of wider brightness value range through the drain line DL1, and gives the sub-pixel having the smaller area a gradation-brightness value characteristic of a narrower brightness value range through the drain line DL2. Such a voltage control is performed by the gradation-brightness value characteristic controller 250.
The LCD controller 260 generates the aforementioned field/line reverse signal FRP based on the horizontal clock signal (H), the vertical clock signal (V), and the synchronization signal (CSY) supplied from the RGB decoder 240, and outputs the generated signal to the gradation-brightness value characteristic controller 250. The LCD controller 260 also generates a horizontal control signal and a vertical control signal, and supplies the horizontal signal to the driver ICs 201 and 202, and the vertical signal to the scanning driver 203. Thereby, signal voltages are applied to the pixel electrodes at predetermined timings, and display data is written on the liquid crystal panel 101.
The common signal driver amp 270 generates and outputs a common signal Vcom for driving a common potential to be applied to the common electrode of the liquid crystal panel 101, based on the field/line reverse signal FRP output from the LCD controller 260. The backlight 280 is set at the back of the liquid crystal panel 101, and its lighting operation is controlled by the backlight control circuit 290. The backlight control circuit 290 controls the backlight 280 based on a backlight control signal output from the LCD controller 260.
The shield case 300 is a metal plate for shielding the liquid crystal panel 101 and the backlight 280 from external shocks. A display window is provided to the shield case 300. The liquid crystal panel 101 is exposed from the opening of this display window. The exposed area of the liquid crystal panel 101 is the display area. The driver ICs and the common driver IC which are divided into plural portions are arranged on the non-display area of the liquid crystal panel 101.
The dispersion plate 302 is used for dispersing light from the backlight 280 to keep the brightness of the surface of the liquid crystal panel 101 uniform. These optical parts may be variously changed in accordance with the type and arrangement of the light source to be used. According to the embodiments of the present invention, the light guide plate 303 is used, and the dispersion plate 302 is arranged at the light emitting surface side of the light guide plate 303.
The light guide plate 303 is used for guiding light from the light source and dispersing the light. The light guide plate 303 is a transparent plate having a dispersion pattern on the surface thereof, although not necessarily limited to this. The shape of the cross section of the dispersion pattern varies in accordance with the type of the light source to be used.
The reflection plate 304 is used for reflecting light from the light source, in order to effectively use the light source as a backlight. According to the embodiments of the present invention, the reflection plate 304 is used for reflecting light from the surfaces of the light guide plate 303 other than the front surface thereof, although not necessarily limited to this.
The lower case 305 is a metal plate for shielding the liquid crystal panel 101 and the backlight 280, etc. from external shocks, as well as the shield case 300. The backlight 280 and the control circuit 290 are mounted on this lower case 305, although not necessarily limited to this.
The backlight 280 is a light source for irradiating light onto the liquid crystal panel 101. According to the embodiments of the present invention, a driving method for an active-matrix type is employed. Various types of lights can be used as the backlight 280. A sidelight type and an under light type can be both employed in the present invention.
The control circuit 290 is an electric circuit for generating a high-frequency voltage for lighting the backlight 280. The control circuit 290 is shielded by the lower case 305 against being touched from outside, because the control circuit 290 reaches a higher voltage compared to other electric circuits.
As described above, according to the embodiments of the present invention, the liquid crystal display device constituted by the shield case 300, the liquid crystal panel 101, the dispersion plate 302, the light guide plate 303, the reflection plate 304, the lower case 305, a backlight 280, and the control circuit 290 is used. However, the liquid crystal display device according to the embodiments of the present invention is not limited to this constitution, but can be variously changed. For example, in case of a cellular phone, these components may be arranged inside the phone body without using the shield case 300. Further, the dispersion plate 304 and the light guide plate 303 may not be used if an enhanced backlight is used as the backlight 280.
The embodiments of the present invention have been explained with reference to the drawings. The detailed structures of the liquid crystal display device and liquid crystal panel, etc. are not limited to those in the explained embodiments, but changes in the design of these structures are also included in the present invention as long as such changes are not beyond the meaning of the present invention. For example, according to the first and second embodiments, the first driver IC and the second driver IC may not be positioned on the upper side and lower side of the liquid crystal panel, but may be positioned on the right side and the left side. Further, according to the third embodiment, the driver IC may not be on the upper side of the liquid crystal panel, but may be on the lower side thereof.
The FRC processing may not be limited only to the second embodiment, but may be employed in the first and third embodiments. In the third embodiment, the explanation has been that the area ratio between the sub-pixels constituting each pixel is other than 1, likewise the first embodiment. However, the area ratio between the sub-pixels may be 1, likewise the second embodiment. Further, the present invention can be applied not only to a color liquid crystal panel, but also to a monochrome liquid crystal panel where a unit pixel constituting the liquid crystal panel is made up of a single pixel.
As has been explained, according to the liquid crystal display device of the present invention, it is possible to perform multi-gradation display greater than that by a conventional liquid crystal display device, by constituting each pixel with sub-pixels and by driving the sub pixels using different driver ICs, without using a complicated circuit structure but using an existing driver ICs. Further, according to the liquid crystal display device of the present invention, it is possible to perform multi-gradation display greater than that achieved by a conventional liquid crystal display device, by constituting each pixel with sub-pixels and driving the sub-pixels using a common driver IC, although a novel driver IC must be prepared.
Various embodiments and changes may be made thereunto without departing from the broad spirit and scope of the invention. The above-described embodiments are intended to illustrate the present invention, not to limit the scope of the present invention. The scope of the present invention is shown by the attached claims rather than the embodiments. Various modifications made within the meaning of an equivalent of the claims of the invention and within the claims are to be regarded to be in the scope of the present invention.
This application is based on the Japanese Patent Application No. 2002-112713 filed on Apr. 15, 2002, and we claim the priority of the invention. The disclosure of the above Japanese Patent Application is incorporated herein by reference in its entirety.
Koga, Koichi, Okuzono, Noboru, Yamaguchi, Machihiko
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